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Facial features and appearance-based classification for face detection in color images

机译:基于面部特征和基于外观的彩色图像人脸检测分类

摘要

A technique is presented for frontal face detection in color images based on facial feature extraction and appearance-based classification. Salient facial features are used to define a search space that is then used in a classification step in order to find the best position of the face in the image. Mouth feature points are identified using the redness property of image pixels whilst eye feature points are detected using a search strategy applied to a subset of regions in a fine region-based segmentation of the candidate face. Face class modeling based on a multivariate normal distribution and discriminating feature analysis is used as the face classification method. The utilization of facial features in this system avoids analyzing the image at every pixel location as well as at multiple scales when detecting faces of different sizes.
机译:提出了一种基于面部特征提取和基于外观的分类在彩色图像中进行正面人脸检测的技术。显着的面部特征用于定义搜索空间,然后在分类步骤中使用该搜索空间以找到图像中人脸的最佳位置。嘴部特征点是使用图像像素的红色属性来识别的,而眼睛特征点是使用搜索策略检测到的,该搜索策略应用于候选脸部的基于精细区域的分割中的区域子集。基于多元正态分布和区分特征分析的人脸分类建模被用作人脸分类方法。在检测不同大小的面部时,该系统中面部特征的使用避免了在每个像素位置以及多个比例下分析图像。

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